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Dynamic mechanical characteristics and failure mode of serpentine under a three-dimensional high static load and frequent dynamic disturbance

机译:三维高静载荷下蛇纹石的动态力学特性及失效模式及频繁动态干扰

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摘要

The improved split Hopkinson pressure bar (SHPB) was used to study the dynamic mechanical properties and failure characteristics of surrounding rock in deep rock mass engineering that is under high stress and affected by blasting excavation and other dynamic disturbances. In a three-dimensional high static load and frequent dynamic disturbance test, the preload high axial pressure and confining pressure are used to simulate the high crustal stress of deep rock, and the effect of small disturbances on the rock is simulated by the low impact load. The results show that there are two types of dynamic stress-strain curves of deep rock: an elastic-plastic curve and plastic-elastic-plastic curve. The curves consists of five parts: the compaction stage, micro-crack steady development stage, micro-crack unstable propagation stage, fatigue damage stage, and fatigue failure stage. Reductive phenomena of constringent strain after dynamic peak stress appear because of the different degrees of rock damage. Moreover, these phenomena include two conditions, namely, whether rebound occurs or not. The impact resistance of rock is strongest when the ratio of the confining pressure to axial pressure is optimal, and the dynamic average strength of rock and accumulative impact times decrease with the increase of the preloaded axial compression and increase with the increase of the preloaded confining pressure. Both the dynamic deformation modulus and dynamic peak stress decrease with the increase of the accumulative impact time, while the maximum strain and the dynamic peak strain increase. The corresponding rebound strain as a whole first increases and then decreases with the increasing impact times. For deep rock, tensile failure and single-bevel plane shear failure are the main failure modes, and pull-compression mixed friction failure is the auxiliary failure mode. Additionally, the lumpiness of broken rock decreases with the increase of the preloaded axial compression and increases with the increase of the preloaded confining pressure.
机译:改进的拆分霍普金森压力棒(SHPB)用于研究深层岩体围岩中周围岩石的动态力学性能和失效特性,受到高应力的影响和爆破挖掘和其他动态扰动。在三维高静电负载和频繁的动态扰动测试中,预载高轴向压力和限制压力用于模拟深层地壳应力,并通过低冲击载荷模拟岩石上的小扰动的影响。结果表明,深层岩石有两种动态应力 - 应变曲线:弹性塑料曲线和塑料弹性塑料曲线。曲线由五个部分组成:压实阶段,微裂纹稳定开发阶段,微裂缝不稳定阶段,疲劳损伤阶段和疲劳失效阶段。由于不同程度的岩石损伤,动态峰值应力后的减少现象。此外,这些现象包括两个条件,即,是否发生反弹。岩石的抗冲击性是最强的,当狭窄压力与轴向压力的比率最佳时,岩石的动态平均强度随着预载的轴向压缩的增加而降低,随着预加载的限制压力的增加而增加。随着累积影响时间的增加,动态变形模量和动态峰值应力均降低,而最大应变和动态峰值应变增加。相应的反弹菌株作为整体的第一次增加,然后随着越来越多的影响时间而减少。对于深岩,拉伸失效和单斜面剪切失效是主要的故障模式,拉压混合摩擦力发生故障是辅助故障模式。另外,破碎岩石的块随着预载的轴向压缩的增加而降低,随着预载的限制压力的增加而增加。

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